Towards new frontiers in CP violation in B decays

Size: px
Start display at page:

Download "Towards new frontiers in CP violation in B decays"

Transcription

1 Journal of Physics: Conference Series OPEN ACCESS Towards new frontiers in CP violation in B decays To cite this article: Robert Fleischer 2014 J. Phys.: Conf. Ser View the article online for updates and enhancements. Related content - Topical Review Robert Fleischer - CP violation, UK Phenomenology Workshop 2000 Tobias Hurth, Choong Sun Kim, Claire Shepherd-Themistocleous et al. - Measurement of CP violation in the B 0 s system Kristof De Bruyn and the Lhcb collaboration This content was downloaded from IP address on 05/12/2017 at 18:45

2 Towards new frontiers in CP violation in B decays Robert Fleischer Nikhef, Science Park 105, NL-1098 XG Amsterdam, Netherlands Department of Physics and Astronomy, Vrije Universiteit Amsterdam, NL-1081 HV Amsterdam, Netherlands Robert.Fleischer@nikhef.nl Abstract. CP-violating effects in decays of B mesons offer a wide spectrum of probes for testing the phase structure of the quark-flavour sector of the Standard Model. After a brief discussion of the picture emerging from the current LHC data, the focus will be put on two specific topics: hadronic uncertainties from penguin topologies on measurements of the Bq 0 B q 0 mixing phases (q {d, s}), and the U-spin-related decays Bs 0 K + K and Bd 0 π + π. Valuable new insights are expected from future studies of CP violation in B decays. For the detection of possible new sources of CP violation, it will be crucial to match the experimental and theoretical precisions and to have a careful look at the underlying assumptions. 1. Introduction In the Standard Model (SM), the rich phenomenology of quark-flavour physics and CP violation is related to the Cabibbo Kobayashi Maskawa (CKM) quark-mixing matrix [1, 2]. Information on the phase structure and elements of this matrix are encoded in weak decays of K, D and B mesons. Since the theory is formulated in terms of quarks while the mesons are bound states of strong interactions, we have to deal with process-dependent, non-perturbative hadronic parameters in the calculation of the relevant transition amplitudes. This feature gives rise to the main challenge in studies of CP violation in B decays: hadronic uncertainties. In the presence of New Physics (NP), typically new sources of flavour and CP violation arise. Analyses of weak meson decays are facing an impressive hierarchy of scales: Λ NP 10 (0...?) TeV Λ EW 10 1 TeV }{{} short distance physics Λ QCD 10 4 TeV }{{}. (1) long distance physics In order to deal with this situation, effective field theories offer the suitable theoretical tool. Within this framework, the heavy degrees of freedom (NP particles, top quark, Z and W bosons) are integrated out from appearing explicitly and are described in short-distance loop functions. Perturbative QCD corrections can be calculated in a systematic way, and renormalisation group techniques allow the summation of large logarithms. This machinery was applied to the SM and various popular NP scenarios, such as MSSM, models with universal and warped extra dimensions, little Higgs models, scenarios with extra Z bosons, etc., as reviewed in [3]. Following these lines, low-energy effective Hamiltonians can be calculated for B f processes, taking the following general form [4]: f H eff B = G F C k (µ) f Q j 2 k (µ) B, (2) j λ j CKM Content from this work may be used under the terms of the Creative Commons Attribution 3.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI. Published under licence by IOP Publishing Ltd 1 k

3 where G F is Fermi s constant and the λ j CKM denote combinations of CKM matrix elements. The short-distance contribution to the decay amplitude is described by the Wilson coefficient functions C k (µ), which can be calculated in perturbation theory for the SM and its extensions. On the other hand, the hadronic matrix elements f Q j k (µ) B are non-perturbative quantities, describing the long-distance contributions. The key players for the exploration of CP violation in B decays are non-leptonic channels. In the previous decade, there were interesting developments for calculations of such processes within QCD: QCD factorisation, the perturbative hard-scattering (PQCD) approach, soft collinear effective theory (SCET) and QCD sum rules; the state of the art is discussed in [5]. There has recently been impressive progress in lattice QCD [6]. However, non-leptonic B decays generally remain a theoretical challenge, which is also indicated by experimental data. The outstanding feature of analyses of CP violation in B decays is that the calculation of the hadronic matrix elements f Q j k (µ) B can be circumvented in fortunate cases (for a detailed discussion, see [7]). The corresponding strategies play a key role to over constrain the unitarity triangle (UT) of the CKM matrix. Detailed analyses and continuous updates are performed by the CKMfitter [8] and UTfit [9] collaborations. The current picture of the UT shows impressive consistency with the CKM sector of the SM, despite a few tensions. The previous run of the Large Hadron Collider (LHC) has resulted in the exciting discovery of the Higgs boson. On the other hand, the ATLAS and CMS experiments have so far not seen signals of NP particles, and the SM flavour sector has been confirmed by the LHCb data, apart from a few discrepancies which are unfortunately not yet conclusive. The implications for the general structure of physics beyond the SM are a large characteristic NP scale, i.e. not just TeV, or (and?) symmetries preventing large NP effects in the flavour sector, where models with Minimal Flavour Violation are the most prominent example. Many more interesting results are expected from the next run of the LHC and its upgrade as well as high-precision flavour experiments. In view of the present situation, we have to prepare ourselves to deal with smallish NP effects. It will be crucial for resolving possible signals of NP in the data to have a careful look at the underlying theoretical assumptions and approximations. The challenge will be to match the experimental and theoretical precisions. 2. Penguin effects in benchmark probes of CP violation Neutral B 0 q mesons (q {d, s}) show B 0 q B 0 q mixing [10], which originates from box topologies in the SM but may well receive NP contributions. The CP-violating mixing phases are given by φ d = φ SM d + φ NP d = 2β + φ NP d, φ s = φ SM s + φ NP s = 2λ 2 η + φ NP s, (3) where β is the usual angle of the UT, while λ V us 0.22 and η are parameters of the Wolfenstein parametrisation of the CKM matrix. The benchmark decays to measure the mixing phases φ q through mixing-induced CP violation are given by B 0 d J/ψK S, B 0 s J/ψφ and B 0 s J/ψf 0 (980). Decays of B s mesons play the key role at the LHC [11]. These determinations are affected by uncertainties from doubly Cabibbo-suppressed penguin contributions [12 19], which cannot be calculated reliably and are usually neglected. In view of the current situation and the increasing experimental precision, the following questions arise: how important are the penguin contributions and how can they be controlled? 2.1. The Bd,s 0 J/ψK S system In the SM, the decay Bd 0 J/ψK S originates from a colour-suppressed tree topology and penguin topologies with up, charm and top quarks running in the loops. Using the unitarity of the CKM matrix, the decay amplitude can be written as follows [12]: ( ) [ A(Bd 0 J/ψ K S ) = 1 λ 2 /2 A 1 + ɛa e iθ e iγ], (4) 2

4 where A and a e iθ are CP-conserving parameters, involving the relevant hadronic matrix elements. Whereas the former quantity is governed by the colour-suppressed tree contribution, the latter measures the ratio of penguin to tree topologies. The key feature of (4) is that the penguin parameter a enters with the tiny ɛ λ 2 /(1 λ 2 ) = 0.05; γ is the usual UT angle. CP violation is probed through the time-dependent decay rate asymmetry Γ(B 0 d (t) J/ψK S) Γ( B 0 d (t) J/ψK S) Γ(B 0 d (t) J/ψK S) + Γ( B 0 d (t) J/ψK S) = C J/ψK S cos( M d t) S J/ψKS sin( M d t), (5) where the direct CP asymmetry C J/ψKS is proportional to ɛ a sin θ sin γ. On the other hand, the mixing-induced CP asymmetry can be written in the following form [14]: S J/ψKS = sin(φ d + φ d ), (6) where the hadronic phase shift φ d is proportional to ɛ a cos θ sin γ (and is usually neglected). In Eq. (5), M d is the mass difference of the B d mass eigenstates. The decay Bs 0 J/ψK S is related to Bd 0 J/ψK S through the U-spin symmetry of strong interactions [12]. In the SM, its decay amplitude can be written as [ A(Bs 0 J/ψ K S ) = λ A 1 ae iθ e iγ]. (7) In contrast to (4), a does not enter with ɛ, i.e. is not doubly Cabibbo-suppressed. Consequently, the penguin effects are magnified in B 0 s J/ψK S. It is useful to introduce a quantity H BR(B s J/ψK S )/BR(B d J/ψK S ), which complements the direct and mixing-induced CP asymmetries of the time-dependent CP-violating rate asymmetry of B 0 s J/ψK S. The U-spin symmetry implies a = a and θ = θ, thereby allowing the determination of γ, a and θ from H and the two CP-violating observables of B 0 s J/ψK S [12]. Since 1999, when this strategy was originally proposed, there has been a change of the main focus: a study [16] has shown that the extraction of γ will be feasible at LHCb but not competitive with other methods. As γ will be known by the time CP violation in B 0 s J/ψK S can be detected, the corresponding CP asymmetries allow a clean determination of the penguin parameters a and θ. The B 0 s J/ψK S channel was observed by CDF [20] and LHCb [21] but its CP asymmetries have not yet been measured. Using currently available data for decays with a CKM structure similar to B 0 s J/ψK S, i.e. B 0 d J/ψπ0 and B + J/ψπ +, and complementing them with B 0 d J/ψK0, B + J/ψK + data, the size of the penguin parameters a and θ can be constrained. An analysis along these lines yields the following preliminary results [22]: a = , θ = ( ), φ d = ( ). (8) 2.2. CP violation in Bs 0 J/ψφ The CKM structure of Bs 0 J/ψφ is analogous to that of Bd 0 J/ψK S. However, as the final state is a mixture of CP-even and CP-odd linear polarisation states f {0,, }, a time-dependent angular analysis of the J/ψ[ µ + µ ]φ[ K + K ] decay products has to be performed [23 25]. The impact of the SM penguin contributions is usually neglected. As in the case of Bd 0 J/ψK S, the expressions for the mixing-induced CP asymmetries are modified as follows [15]: A mix CP,f = sin φ s sin(φ s + φ f s ), (9) where the hadronic phase shift φ f s depends on the final-state configuration f. The current average (neglecting the penguin effects) of the CDF, D0, ATLAS and LHCb data compiled by the Heavy Flavour Averaging Group is given by φ s = (0.0 ± 4.0) [26], which agrees with the SM value φ SM s = (2.11 ± 0.08) [8] of the Bs 0 B s 0 mixing phase. 3

5 A tool to control the penguin effects is offered by Bs 0 J/ψ K 0 [15], which was observed by CDF [20] and LHCb [27]. Its branching ratio ( ± 0.8) 10 5 is found in agreement with the prediction (4.6±0.4) 10 5 following from Bd 0 J/ψρ0, and its polarisation fractions agree well with those of Bd 0 J/ψK 0. The Bd 0 J/ψρ0 channel, which shows also mixing-induced CP violation, is another interesting decay to shed light on the hadronic penguin effects [15]. The experimental sensitivity from Bs 0 J/ψφ at the LHCb upgrade (50 fb 1 ) is expected as φ s exp = 0.46 [28]. This impressive precision will make it mandatory to get a handle on the penguin effects, which may lead to phase shifts at the 1 level (as indicated by Eq. (8)) CP violation in B 0 s J/ψf 0 (980) Another interesting probe to study CP violation is provided by B 0 s J/ψf 0 (980) [29]. In contrast to B 0 s J/ψφ, as the f 0 (980) is a scalar state with quantum numbers J P C = 0 ++, the final state is present in a p wave and has the CP eigenvalue 1. Consequently, a time-dependent angular analysis is not needed. On the other hand, the hadronic structure of the f 0 (980) is still after decades not settled, with a variety of theoretical interpretations ranging from the quark antiquark picture to tetraquarks. A detailed discussion of the implications of this feature for the extraction of φ s was given in [18] (for B 0 s,d J/ψη( ) decays, see [30]), while recent LHCb measurements related to this topic are reported in [31] Effective B 0 s decay lifetimes The measurement of effective lifetimes of B 0 s f decays, which are defined as τ f 0 t Γ(B s (t) f) dt 0 Γ(B s(t) f) dt, (10) offers yet another way to obtain insights into CP violation [32]. Here it is particularly interesting to compare B 0 s decays into CP-odd final states, such as B 0 s J/ψf 0 (980), with those into CPeven final states, such as B 0 s K + K and B 0 s D + s D s. The measured effective lifetimes can be converted into contours in the φ s Γ s plane, where Γ s is the decay width difference of the B s -meson system (for an overview of the status of Γ s, see [33]). The lifetime contours are very robust with respect to hadronic uncertainties [32]. For an update with the most recent LHCb data, see [34]. The B s decay lifetimes result in a picture in agreement with the SM Comments for the LHCb upgrade era In view of hadronic effects, it is important to give measurements of φ s for the individual decay channels Bs 0 f, i.e. Bs 0 J/ψφ and Bs 0 J/ψf 0 (980). The pattern of the (φ s ) f may provide insights into the hadronic effects: differences in the values of (φ s ) f would indicate hadronic effects. On the other hand, should no differences between the individual φ s emerge, there would be evidence for negligible hadronic effects (within the errors) or a universal hadronic phase shift. The time-dependent analysis of CP violation in Bs 0 J/ψK S allows the clean determination of the corresponding penguin parameters (see Subsection 2.1). A sizeable penguin parameter a would indicate a potential problem in the measurement of φ s from the Bs 0 J/ψφ and Bs 0 J/ψf 0 (980) channels. On the other hand, smallish penguin effects would give us confidence for the measurement of φ s, although subtleties may arise due to the different final states. 3. CP Violation in B 0 s K+ K and B 0 d π+ π The decays B 0 s K + K and B 0 d π+ π receive contributions from tree and penguin topologies. In the SM, their decay amplitudes can be written as [ ] [ A(Bs 0 K + K ) C e iγ + d e iθ /ɛ, A(Bd 0 π + π ) C e iγ d e iθ], (11) 4

6 where d e iθ, C and their unprimed counterparts are CP-conserving strong quantities [35]. The direct and mixing-induced CP asymmetries of the B 0 s K + K and B 0 d π+ π decays allow the determination of theoretically clean contours in the γ d and γ d planes, respectively. Since these decays are related to each other through the interchange of all down and strange quarks, the U-spin symmetry of strong interactions implies d = d and θ = θ; the former relation allows the extraction of γ and d(= d ) from the contours [35, 36]. Moreover, the strong phases θ and θ can be determined, allowing an internal consistency check of the U-spin symmetry. Further insights into the hadronisation dynamics are provided by C and C, which can be extracted from the ratio K BR(B s K + K )/BR(B d π + π ). This strategy is promising for the LHCb physics programme [28]. It will be particularly interesting to compare the resulting value of γ with those following from methods using only tree-diagram-like B (s) -meson decays. The picture resulting from the current data was explored in detail in [36, 37]; the numerical results given below refer to the update by Rob Knegjens in [38]. An interesting variant of the method was proposed in [39], as discussed in detail by Marco Ciuchini in [40]. Using information on K, CP violation in B 0 d π+ π and B 0 d π K ±, and allowing for U-spin-breaking corrections ξ d /d = 1 ± 0.15, θ θ θ = ±20 results in γ = ( input ξ θ), (12) which agrees with the tree-level results γ = ( ) [8] and (69.4 ± 7.1) [9] within the uncertainties. There are no indications for sizeable non-factorisable SU(3)-breaking corrections in the corresponding data. In the SM, the mixing-induced CP asymmetry is predicted as A mix CP (B s K + K ) SM = , (13) while A dir CP (B s K + K ) A dir CP (B d π ± K ± ) = ± The first LHCb measurement [41] of the CP-violating B s K + K observables yields A mix CP (B s K + K ) = 0.30 ± 0.12 ± 0.04, A dir CP(B s K + K ) = 0.14 ± 0.11 ± 0.03, (14) and agrees with the SM predictions given above. In the future, once the experimental precision for the CP asymmetries improves, γ can be extracted exclusively from the γ d ( ) contours. The observable K, which is affected by form factors and non-factorisable effects, will then yield insights into hadronic physics. The current data point towards a fortunate situation for the determination of γ which is very robust with respect to U-spin-breaking corrections [36 38]. 4. Outlook The exploration of CP violation in B decays is a very broad field, with many other interesting topics complementing those discussed above. I would like to briefly give two more examples: The penguin decay B 0 s φφ (for a recent theoretical discussion, see [42]). This summer, LHCb announced the first time-dependent angular analysis of CP violation in this channel [43]. The result φ s = 0.17 ± 0.15(stat) ± 0.03(syst) = (9.7 ± 8.8) is consistent with the SM at the present level of precision. This channel has a lot of potential for the future. A promising decay for Belle II at SuperKEKB is the decay B 0 d π0 K S. A correlation between the direct and mixing-induced CP asymmetries of this channel can be predicted in the SM, with current data showing an intriguing discrepancy [44]. It will be interesting to monitor the future measurements of the corresponding observables at Belle II. We are moving towards new frontiers in particle physics. There are still no unambiguous signals for NP at the LHC, and it is impressive also frustrating to see how the SM stands more and more stringent tests, both at the high-energy and at the high-precision frontier. Much 5

7 more is yet to come with the future running of the LHC and dedicated studies of flavour physics, including CP violation in B decays. However, we have to prepare ourselves to deal with smallish NP effects in the data. In view of the increasing experimental precision, we have to be careful with respect to theoretical assumptions and approximations. The challenge will be the matching of the experimental and theoretical uncertainties in the future high-precision era. Interesting and fruitful years for the further testing of the SM and the search of NP are ahead of us! Acknowledgements I would like to thank Cristina Lazzeroni and her co-organizers for inviting me to this most interesting and enjoyable conference and their kind hospitality in Birmingham. References [1] Cabibbo N 1963 Phys. Rev. Lett [2] Kobayashi M and Maskawa T 1973 Prog. Theor. Phys [3] Buras A J and Girrbach J 2013 arxiv: [hep-ph] [4] Buchalla G, Buras A J and Lautenbacher M E 1996 Rev. Mod. Phys [5] Bell G 2014 these proceedings [6] Jüttner A 2014 these proceedings [7] Fleischer R 2002 Phys. Rept [8] Charles J et al. [CKMfitter Group] [9] Bevan A et al. [UTfit Collaboration] [10] Bobeth C 2014 these proceedings [11] Borissov G, Fleischer R and Schune M-H 2013 Ann. Rev. Nucl. Part. Sci [12] Fleischer R 1999 Eur. Phys. J. C [13] Ciuchini M, Pierini M and Silvestrini L 2005 Phys. Rev. Lett [14] Faller S, Fleischer R, Jung M and Mannel T 2009 Phys. Rev. D [15] Faller S, Fleischer R and Mannel T 2009 Phys. Rev. D [16] De Bruyn K, Fleischer R and Koppenburg P 2010 Eur. Phys. J. C [17] Ciuchini M, Pierini M and Silvestrini L 2011 arxiv: [hep-ph] [18] Fleischer R, Knegjens R and Ricciardi G 2011 Eur. Phys. J. C [19] Jung M 2012 Phys. Rev. D [20] Aaltonen T et al. [CDF Collaboration] 2011 Phys. Rev. D [21] Aaij R et al. [LHCb Collaboration] 2012 Phys. Lett. B [22] De Bruyn K and Fleischer R 2014 in preparation. [23] Dighe A S, Dunietz I, Lipkin H J and Rosner J L 1996 Phys. Lett. B [24] Dighe A S, Dunietz I and Fleischer R 1999 Eur. Phys. J. C [25] Dunietz I, Fleischer R and Nierste U 2001 Phys. Rev. D [26] Amhis Y et al. [Heavy Flavour Averaging Group] [27] Aaij R et al. [LHCb Collaboration] 2012 Phys. Rev. D [28] Aaij R et al. [LHCb Collaboration] 2013 Eur. Phys. J. C [29] Stone S and Zhang L 2009 Phys. Rev. D ; arxiv: [hep-ex]. [30] Fleischer R, Knegjens R and Ricciardi G 2011 Eur. Phys. J. C [31] Aaij R et al. [LHCb Collaboration] 2014 Phys. Rev. D [32] Fleischer R and Knegjens R 2011 Eur. Phys. J. C [33] Lenz A 2012 arxiv: [hep-ph]. [34] Gandini P talk at Beauty 2014, July 2014, Edinburgh, UK, [35] Fleischer R 1999 Phys. Lett. B [36] Fleischer R 2007 Eur. Phys. J. C [37] Fleischer R and Knegjens R 2011 Eur. Phys. J. C [38] Knegjens R 2014 PhD thesis Vrije Universiteit Amsterdam [39] Ciuchini M, Franco E, Mishima S and Silvestrini L 2012 JHEP [40] Ciuchini M talk at Beauty 2014, July 2014, Edinburgh, UK, [41] Aaij R et al. [LHCb Collaboration] 2013 JHEP [42] Bhattacharya B, Datta A, Duraisamy M and London D 2013 Phys. Rev. D [43] De Bruyn K 2014 these proceedings; Aaij R et al. [LHCb Collaboration] 2014 arxiv: [hep-ex] [44] Fleischer R, Jäger S, Pirjol D and Zupan J 2008 Phys. Rev. D

New Probes of New Physics with Leptonic Rare B Decays

New Probes of New Physics with Leptonic Rare B Decays Nikhef-2018-019 New Probes of New Physics with Leptonic Rare B Decays Robert Fleischer a,b a Nikhef, Science Park 105, 1098 XG Amsterdam, Netherlands b Department of Physics and Astronomy, Faculty of Science,

More information

LHCb: first results and prospects for the run

LHCb: first results and prospects for the run Journal of Physics: Conference Series : first results and prospects for the 1-11 run To cite this article: J P Palacios and the Lhcb Collaboration 1 J. Phys.: Conf. Ser. 9 1 View the article online for

More information

Moriond QCD La Thuile, March 14 21, Flavour physics in the LHC era. An introduction. Clara Matteuzzi. INFN and Universita Milano-Bicocca

Moriond QCD La Thuile, March 14 21, Flavour physics in the LHC era. An introduction. Clara Matteuzzi. INFN and Universita Milano-Bicocca Moriond QCD La Thuile, March 14 21, 2009 Flavour physics in the LHC era An introduction Clara Matteuzzi INFN and Universita Milano-Bicocca 1 Contents 1. The flavor structure of the Standard Model 2. Tests

More information

PoS(FPCP2015)002. Theoretical Prospects for B Physics

PoS(FPCP2015)002. Theoretical Prospects for B Physics Nikhef, Science Park 105, 1098 XG Amsterdam, Netherlands Department of Physics and Astronomy, VU University Amsterdam, 1081 HV Amsterdam, Netherlands E-mail: Robert.Fleischer@nikhef.nl The exploration

More information

Determination of the phase φ s at LHCb

Determination of the phase φ s at LHCb Determination of the phase φ s at LHCb Varvara Batozskaya 1,, on behalf of the LHCb Collaboration 1 National Centre for Nuclear Research (NCBJ), Warsaw, Poland Abstract. The determination of the mixing-induced

More information

Penguin decays at LHCb

Penguin decays at LHCb Penguin decays at LHCb Paula Álvarez Cartelle Universidade de Santiago de Compostela XL International Meeting on Fundamental Physics, Benasque May 31, 2012 Outline 1 Introduction 2 LHCb results Bs 0 K

More information

arxiv: v1 [hep-ex] 21 Jan 2012

arxiv: v1 [hep-ex] 21 Jan 2012 Review of B s Mesons and b Baryons R.F. Harr Wayne State University, Detroit Michigan, 48, USA The measurements of Bs mesons and b baryons advanced greatly in the past year. The ground state b baryon Ξ

More information

Recent BaBar results on CP Violation in B decays

Recent BaBar results on CP Violation in B decays Journal of Physics: Conference Series OPEN ACCESS Recent BaBar results on CP Violation in B decays To cite this article: Arantza Oyanguren 2013 J. Phys.: Conf. Ser. 447 012029 View the article online for

More information

Recent results from rare decays

Recent results from rare decays Recent results from rare decays Jeroen van Tilburg (Physikalisches Institut Heidelberg) Don t worry about the number of slides: Only half of them is new Advanced topics in Particle Physics: LHC physics,

More information

Measurements of the phase φ s at LHCb

Measurements of the phase φ s at LHCb Measurements of the phase φ s at LHCb V. Batozskaya 1 on behalf of LHCb collaboration 1 National Centre for Nuclear Research, Warsaw, Poland XXIII Cracow Epiphany Conference 9-12 January 2017 V. Batozskaya

More information

Status of the CKM Matrix and a simple New Physics scenario

Status of the CKM Matrix and a simple New Physics scenario Status of the CKM Matrix and a simple New Physics scenario J. Charles, on behalf of the CKMfitter group a a Centre de Physique Théorique, Luminy Case 907 3288 Marseille Cedex 9, France We present a short

More information

Status of the CKM Matrix and a simple New Physics scenario

Status of the CKM Matrix and a simple New Physics scenario Status of the CKM Matrix and a simple New Physics scenario J. Charles, on behalf of the CKMfitter group a a Centre de Physique Théorique, Luminy Case 97 3288 Marseille Cedex 9, France We present a short

More information

Overview of LHCb Experiment

Overview of LHCb Experiment Overview of Physics @ LHCb Experiment Yuanning Gao, Tsinghua University Representing the LHCb Collaboration Detector performance CKM triangles Other topics (selected) Conclusions A very selective review!

More information

LHCb results relevant to SUSY and BSM physics

LHCb results relevant to SUSY and BSM physics LHCb results relevant to SUSY and BSM physics SUSY 2013, 31 st August 2013 Mitesh Patel (Imperial College London) On behalf of the LHCb Collaboration Introduction The interest in B physics : Virtual contributions

More information

Rare decays at LHCb Siim Tolk (NIKHEF, Amsterdam) on behalf of the LHCb Collaboration

Rare decays at LHCb Siim Tolk (NIKHEF, Amsterdam) on behalf of the LHCb Collaboration Rare decays at LHCb Siim Tolk (NIKHEF, Amsterdam) on behalf of the LHCb Collaboration Bormio 2014 Rare decays at LHCb Siim Tolk (NIKHEF, Amsterdam) on behalf of the LHCb Collaboration Other talks from

More information

Time-dependent CP violation

Time-dependent CP violation Time-dependent CP violation experimental results and prospects Paul Seyfert on behalf of the collaboration INFN Milano Bicocca 13th October 216 Paul Seyfert (INFN MIB) time dependent CPV implications workshop

More information

Rare beauty and charm decays at LHCb

Rare beauty and charm decays at LHCb Rare beauty and charm decays at LHCb Marcin Chrząszcz 1,2 on behalf of the LHCb collaboration 1 University of Zurich, 2 Institute of Nuclear Physics, Krakow Heavy Quarks and Leptons 2014 August 25, 2014

More information

CP Violation in the B(s) meson system at LHCb Julian Wishahi on behalf of the LHCb collaboration

CP Violation in the B(s) meson system at LHCb Julian Wishahi on behalf of the LHCb collaboration CP Violation in the B(s) meson system at Julian Wishahi on behalf of the collaboration 5th Rencontres de Moriond, Electroweak Session, 2th of March 215 CPV in Interference of Mixing/Decay interference

More information

CP Violation at the LHC - workshop 2017

CP Violation at the LHC - workshop 2017 CP Violation at the LHC - SM@LHC workshop 217 Sarah Karodia on behalf of the LHCb collaboration, including results from ATLAS, CMS and LHCb University of Glasgow May 2, 217 Sarah Karodia (UoG) SM@LHC 217

More information

Max-Planck-Institute for Physics, Föhringer Ring 6, D Munich, Germany. Department of Physics and IPAP, Yonsei University, Seoul , Korea

Max-Planck-Institute for Physics, Föhringer Ring 6, D Munich, Germany. Department of Physics and IPAP, Yonsei University, Seoul , Korea PROCEEDINGS The Width Difference of B d Mesons Amol Dighe Max-Planck-Institute for Physics, Föhringer Ring 6, D-80805 Munich, Germany CERN, Theory Division, CH 1211 Geneva 23, Switzerland Choong Sun Kim

More information

Updates from UTfit within and beyond the Standard Model

Updates from UTfit within and beyond the Standard Model Updates from UTfit within and beyond the Standard Model Marcella Bona Queen Mary, University of London SUSY 2013 26 August 2013 Trieste, Italy unitarity Triangle analysis in the SM SM UT analysis: provide

More information

Measurements of CP violating phases in B decays at LHCb

Measurements of CP violating phases in B decays at LHCb Measurements of CP violating phases in B decays at Sevda Esen [Heidelberg University] on behalf of the collaboration Les Rencontres de Physique de la Vallée d Aoste, 1-7 March 215 CP Violation in the SM

More information

arxiv: v1 [hep-ph] 5 Dec 2014

arxiv: v1 [hep-ph] 5 Dec 2014 Direct CP violation in Λ b decays Y.K. Hsiao 1,2 and C.Q. Geng 1,2,3 1 Physics Division, National Center for Theoretical Sciences, Hsinchu, Taiwan 300 2 Department of Physics, National Tsing Hua University,

More information

Recent CP violation measurements

Recent CP violation measurements Recent CP violation measurements 1/38 Recap of last week What we have learned last week: Indirect searches (CP violation and rare decays) are good places to search for effects from new, unknown particles.

More information

Status of B-mixing in the standard model and beyond

Status of B-mixing in the standard model and beyond Journal of Physics: Conference Series OPEN ACCESS Status of B-mixing in the standard model and beyond Recent citations - B(s) -mixing matrix elements from lattice QCD for the Standard Model and beyond

More information

Updated S 3 Model of Quarks

Updated S 3 Model of Quarks UCRHEP-T56 March 013 Updated S 3 Model of Quarks arxiv:1303.698v1 [hep-ph] 7 Mar 013 Ernest Ma 1 and Blaženka Melić 1, 1 Department of Physics and Astronomy, University of California, Riverside, California

More information

Hadronic B/D decays in factorization assisted topology diagram approach

Hadronic B/D decays in factorization assisted topology diagram approach Hadronic B/D decays in factorization assisted topology diagram approach Cai-Dian Lü( 吕才典 ) CFHEP, Institute of High Energy Physics, Beijing Based on work collaborated with Hsiang-nan Li, Ying Li, F-S.

More information

arxiv:hep-ph/ v1 17 Oct 2003

arxiv:hep-ph/ v1 17 Oct 2003 LMU 25/03 October 2003 Model Independent Bound on the Unitarity Triangle from CP Violation in B π + π and B ψk S arxiv:hep-ph/0310218v1 17 Oct 2003 Gerhard Buchalla and A. Salim Safir Ludwig-Maximilians-Universität

More information

PoS(Kruger 2010)048. B X s/d γ and B X s/d l + l. Martino Margoni SLAC-PUB Universita di Padova and INFN

PoS(Kruger 2010)048. B X s/d γ and B X s/d l + l. Martino Margoni SLAC-PUB Universita di Padova and INFN SLAC-PUB-15491 B X s/d γ and B X s/d l + l Universita di Padova and INFN E-mail: martino.margoni@pd.infn.it Flavour Changing Neutral Current transitions B X s/d γ and B X s/d l + l provide an excellent

More information

Recent CP violation measurements. Advanced topics in Particle Physics: LHC physics, 2011 Jeroen van Tilburg 1/38

Recent CP violation measurements. Advanced topics in Particle Physics: LHC physics, 2011 Jeroen van Tilburg 1/38 Recent CP violation measurements Advanced topics in Particle Physics: LHC physics, 2011 Jeroen van Tilburg 1/38 Recap of last week What we have learned last week: Indirect searches (CP violation and rare

More information

Experimental prospects for B physics and discrete symmetries at LHC and future projects

Experimental prospects for B physics and discrete symmetries at LHC and future projects Experimental prospects for B physics and discrete symmetries at LHC and future projects University of Warwick DISCRETE 2010 Symposium on Prospects in the Physics of Discrete Symmetries 6th December 2010

More information

Standard Model updates and new physics analysis with the Unitarity Triangle fit

Standard Model updates and new physics analysis with the Unitarity Triangle fit Standard Model updates and new physics analysis with the Unitarity Triangle fit Marcella Bona A. Bevan, M. Bona, M. Ciuchini, D. Derkach, E. Franco, V. Lubicz, G. Martinelli, F. Parodi, M. Pierini, C.

More information

New Physics & Future B Physics Programs CP violation Rare Decays

New Physics & Future B Physics Programs CP violation Rare Decays Andrey Golutvin ARGUS & ITEP/Moscow New Physics & Future B Physics Programs CP violation Rare Decays 1 Experimental Facilities LHCb forward spectrometer (running in pp collider mode) Data taking starts

More information

Heavy Flavour Physics at the LHC. Lessons from the first phase of the LHC DESY 27 September 2012

Heavy Flavour Physics at the LHC. Lessons from the first phase of the LHC DESY 27 September 2012 Heavy Flavour Physics at the LHC University of Warwick and CERN Lessons from the first phase of the LHC DESY 27 September 2012 1 Outline Heavy flavour production at the LHC The LHCb experiment Selected

More information

Theoretical study of rare B/D decays

Theoretical study of rare B/D decays Theoretical study of rare B/D decays Cai-Dian Lü( 吕才典 ) CFHEP, Institute of High Energy Physics, Beijing 1 Outline n Introduction/Motivation n Theory of non-leptonic B/D decays n Factorization assisted

More information

PoS(ICHEP2012)238. Search for B 0 s µ + µ and other exclusive B decays with the ATLAS detector. Paolo Iengo

PoS(ICHEP2012)238. Search for B 0 s µ + µ and other exclusive B decays with the ATLAS detector. Paolo Iengo Search for B s µ + µ and other exclusive B decays with the ATLAS detector. On behalf of the ATLAS Collaboration INFN Naples, Italy E-mail: paolo.iengo@cern.ch The ATLAS experiment, collecting data in pp

More information

PoS(FPCP2017)018. CP violation in the baryon sector. Eluned Smith RWTH Aachen On behalf of the LHCb collaboration

PoS(FPCP2017)018. CP violation in the baryon sector. Eluned Smith RWTH Aachen   On behalf of the LHCb collaboration RWTH Aachen E-mail: eluned.anne.smith@cern.ch On behalf of the LHCb collaboration The study of violation in the baryon sector is still a relatively new field and offers the possibility to make many measurements

More information

The Compact Muon Solenoid Experiment. CMS Note. Mailing address: CMS CERN, CH-1211 GENEVA 23, Switzerland. CMS prospects for heavy flavour physics

The Compact Muon Solenoid Experiment. CMS Note. Mailing address: CMS CERN, CH-1211 GENEVA 23, Switzerland. CMS prospects for heavy flavour physics Available on CMS information server CMS NOTE -2011/008 The Compact Muon Solenoid Experiment CMS Note Mailing address: CMS CERN, CH-1211 GENEVA 23, Switzerland 10 November 2011 (v2, 14 November 2011) CMS

More information

Theory of CP Violation

Theory of CP Violation Theory of CP Violation IPPP, Durham CP as Natural Symmetry of Gauge Theories P and C alone are not natural symmetries: consider chiral gauge theory: L = 1 4 F µνf µν + ψ L i σdψ L (+ψ R iσ ψ R) p.1 CP

More information

Bs studies at a SuperB: physics case and experimental potentialities

Bs studies at a SuperB: physics case and experimental potentialities Bs studies at a SuperB: physics case and experimental potentialities 1 2 3 4 5 6 E.Baracchini1,2, M.Bona3, F.Ferroni1,2, G.Isidori2,4, G.Martinelli1,2, M.Pierini5, G.Piredda1,2, F.Renga1,2, A.Stocchi6

More information

Precision measurement of

Precision measurement of Precision of Francesca Dordei University of Heidelberg, Physikalisches Institut b 3rd IMPRS-PTFS Seminar, Heidelberg - 24 th April 2012 (Heidelberg University) 24-04-2012 1 / 24 and the LHCb detector CP

More information

arxiv: v1 [hep-ex] 10 Aug 2011

arxiv: v1 [hep-ex] 10 Aug 2011 The Physics Potential of SuperB F. F. Wilson 1 on behalf of the SuperB Collaboration STFC Rutherford Appleton Laboratory, Chilton, Didcot, Oxon, OX11 0QX, UK arxiv:1108.2178v1 [hep-ex] 10 Aug 2011 SuperB

More information

Future Belle II experiment at the KEK laboratory

Future Belle II experiment at the KEK laboratory Future Belle II experiment at the KEK laboratory Jarosław Wiechczyński 27.03.2017 Rencontres de Moriond QCD and High Energy Interactions 2 Outline B factories and their features SuperKEKB collider and

More information

Adrian Bevan Department of Physics Liverpool University Liverpool, United Kingdom (from the BABAR Collaboration.)

Adrian Bevan Department of Physics Liverpool University Liverpool, United Kingdom (from the BABAR Collaboration.) BABAR-PROC-04/138 SLAC-PUB-10874 Measurements of sin 2α/φ 2 from B ππ, ρπ and ρρ modes. Adrian Bevan Department of Physics Liverpool University Liverpool, United Kingdom (from the BABAR Collaboration.)

More information

How well do we know the Unitarity Triangle? An experimental review

How well do we know the Unitarity Triangle? An experimental review SLAC-PUB-1281 hep-ex/78.3238 September 27 How well do we know the Unitarity Triangle? An experimental review Massachusetts Institute of Technology, Department of Physics, Room 26-443, 77 Massachusetts

More information

arxiv: v1 [hep-ph] 10 Feb 2010

arxiv: v1 [hep-ph] 10 Feb 2010 arxiv:1002.2140v1 [hep-ph] 10 Feb 2010 Theoretical overview of b s hadronic decays University of Sussex, Department of Physics and Astronomy, Falmer, Brighton BN1 9QH, UK E-mail: S.Jaeger@sussex.ac.uk

More information

(Heavy Quark) Flavour Physics at LHC

(Heavy Quark) Flavour Physics at LHC Tevatron and LHC WS17/18 TUM S.Bethke, F. Simon V13: Heavy Quarks at LHC 1 Lecture 13: (Heavy Quark) Flavour Physics at LHC flavour physics - intro CKM quark mixing matrix goals of flavour physics heavy

More information

LHCb Physics and prospects. Stefano Perazzini On behalf of LHCb Collabora4on MENU nd June 2010

LHCb Physics and prospects. Stefano Perazzini On behalf of LHCb Collabora4on MENU nd June 2010 LHCb Physics and 2010-11 prospects Stefano Perazzini On behalf of LHCb Collabora4on MENU2010 2 nd June 2010 Physics: OUTLINE Flavor physics and CPV in the quark sector Search for New Physics The LHCb Experiment

More information

CP Violation Beyond the Standard Model

CP Violation Beyond the Standard Model CP Violation Beyond the Standard Model 5th Recontres du Vietnam Hanoi August 7, 2004 Yossi Nir (Weizmann Institute of Science) Thanks to: Sandrine Laplace, Zoltan Ligeti CPV BSM 1/21 Motivation Why do

More information

Fleischer Mannel analysis for direct CP asymmetry. Abstract

Fleischer Mannel analysis for direct CP asymmetry. Abstract Fleischer Mannel analysis for direct CP asymmetry SLAC-PUB-8814 hep-ph/yymmnnn Heath B. O Connell Stanford Linear Accelerator Center, Stanford University, Stanford CA 94309, USA hoc@slac.stanford.edu (8

More information

CP violation in quark flavor physics

CP violation in quark flavor physics CP violation in quark flavor physics Stefania Gori University of Cincinnati Testing CP-violation for baryogengesis University of Massachusetts, Amherst, March 29, 2018 Outline and aim of the talk Outline

More information

CP VIOLATION AND CKM PHASES FROM TIME-DEPENDENCES OF UNTAGGED B s DECAYS a ROBERT FLEISCHER

CP VIOLATION AND CKM PHASES FROM TIME-DEPENDENCES OF UNTAGGED B s DECAYS a ROBERT FLEISCHER hep-ph/9609332 September 1996 CP VIOATION AND CKM PASES FROM TIME-DEPENDENCES OF UNTAGGED B s DECAYS a ROBERT FEISCER Institut ür Theoretische Teilchenphysik, Universität Karlsruhe, D 76128 Karlsruhe,

More information

Elementary Particles, Flavour Physics and all that...

Elementary Particles, Flavour Physics and all that... Elementary Particles, Flavour Physics and all that... 1 Flavour Physics The term Flavour physics was coined in 1971 by Murray Gell-Mann and his student at the time, Harald Fritzsch, at a Baskin-Robbins

More information

Hadronic B decays from SCET. Christian Bauer LBNL FPCP 2006, Vancouver

Hadronic B decays from SCET. Christian Bauer LBNL FPCP 2006, Vancouver Hadronic B decays from SCET Christian Bauer LBNL FPCP 2006, Vancouver Outline of the Talk Introduction Hadronic B deays in SCET Phenomenology of Hadronic B decays Conclusions Introduction Flavor Physics

More information

Flavour Physics. WIN 2015 Heidelberg, Germany, June 8-13, 2015 Tatsuya Nakada. LPHE EPFL Lausanne, Switzerland

Flavour Physics. WIN 2015 Heidelberg, Germany, June 8-13, 2015 Tatsuya Nakada. LPHE EPFL Lausanne, Switzerland Flavour Physics WIN 2015 Heidelberg, Germany, June 8-13, 2015 Tatsuya Nakada LPHE EPFL Lausanne, Switzerland Flavour Physics WIN2015, 8-13 June 2015, Heidelberg, Germany T. NAKADA 1/75 Contents Pre-B Factory

More information

New physics searches via FCNC b s ll decays at ATLAS

New physics searches via FCNC b s ll decays at ATLAS New physics searches via FCNC b s ll at ATLAS Marcella (QMUL) on behalf of the ATLAS Collaboration UK Flavour Workshop Durham, UK September 5th, 2017 B physics in ATLAS very limited (wo)man power but a

More information

Probing New Physics Through B s Mixing

Probing New Physics Through B s Mixing Probing New Physics Through B s Mixing Patricia Ball IPPP, Durham Moriond EW, Mar 12 2007 Phenomenology of B s Mixing B 0 = (b s) and B 0 = (s b) with definite flavour content, but not mass eigenstates

More information

LHCb Discovery potential for New Physics

LHCb Discovery potential for New Physics Beam induced splash in LHCb Imperial College London LHCb Discovery potential for New Physics Introduction Physics with LHCb Flavour physics can provide unique input on the type of New Physics If we express

More information

Matter, antimatter, colour and flavour in particle physics

Matter, antimatter, colour and flavour in particle physics Matter, antimatter, colour and flavour in particle physics Sébastien Descotes-Genon Laboratoire de Physique Théorique CNRS & Univ. Paris-Sud, Université Paris-Saclay, 91405 Orsay, France RBI, Zagreb, 5

More information

On behalf of M. Bona, G. Eigen, R. Itoh and E. Kou

On behalf of M. Bona, G. Eigen, R. Itoh and E. Kou α,φ 2 γ,φ 3 β,φ 1 On behalf of M. Bona, G. Eigen, R. Itoh and E. Kou Chapter Outline Section: Introduction and goals 2p Section: Methodology Subsection: CKMfitter 2p Subsection: UTfit 2p Subsection: Scanning

More information

Search for Physics Beyond the Standard Model at B Factories

Search for Physics Beyond the Standard Model at B Factories Search for Physics Beyond the Standard Model at B Factories Gautier Hamel de Monchenault CEA-Saclay DAPNIA/SPP on behalf of the BABAR & BELLE Collaborations Moskow, 29 July 2006 New Physics in Flavor Sector

More information

Bounds on New Physics from the Unitarity Triangle fit: Summer'06 update

Bounds on New Physics from the Unitarity Triangle fit: Summer'06 update Bounds on New Physics from the Unitarity Triangle fit: Summer'06 update University of Wisconsin, Madison on behalf of UTfit Collaboration http://www.utfit.org M. Bona, M. Ciuchini, E. Franco, V. Lubicz,

More information

Neville Harnew University of Oxford

Neville Harnew University of Oxford Review of Unitarity Triangle and Spectroscopy Measurements with LHCb Neville Harnew University of Oxford On behalf of the LHCb Collaboration September 5 th 2017 1 Outline General introduction The LHCb

More information

Rare decays, radiative decays and b sll transitions at LHCb

Rare decays, radiative decays and b sll transitions at LHCb Rare decays, radiative decays and b sll transitions at Andrew Crocombe, on behalf of the collaboration University of Warwick 19/3/18-3 rd Rencontres de Moriond - QCD and High Energy Interactions Rare decays

More information

arxiv: v2 [hep-ex] 22 Dec 2013

arxiv: v2 [hep-ex] 22 Dec 2013 UCHEP-13-4 December, 13 arxiv:131.57v [hep-ex] Dec 13 Asymmetry Measurements in D Decays from Belle A. J. Schwartz Physics Departement University of Cincinnati, P.O. Box 111, Cincinnati, Ohio 451 USA We

More information

Results from B-Physics (LHCb, BELLE)

Results from B-Physics (LHCb, BELLE) Prospects for Charged Higgs Uppsala, Sweden, 16-18 September 2014. Results from B-Physics (LHCb, BELLE) Valery Pugatch Kiev Institute for Nuclear Research, NASU On behalf of the LHCb Collaboration 1 OUTLINE

More information

Recent developments on CKM angles

Recent developments on CKM angles Recent developments on CKM angles Wei Wang Helmholtz-Institut für Strahlen- und Kernphysik, Bonn Flavor Physics & CP Violation, Buzios, Rio, 19-24 May 2013 (FPCP 2013) Wei Wang (HISKP) CKM angles Buzios,

More information

arxiv: v1 [hep-ph] 29 Nov 2018

arxiv: v1 [hep-ph] 29 Nov 2018 November 30, 208 arxiv:8.223v [hep-ph] 29 Nov 208 Dimension six effective operators in t-channel single top production and decay at NLO in QCD Marc de Beurs Nikhef, Science Park 05, Amsterdam, The Netherlands

More information

LHCb New B physics ideas

LHCb New B physics ideas Imperial College London Beam induced splash in LHCb LHCb New B physics ideas Ulrik Egede @ Interplay of Collider and Flavour Physics, 2 nd meeting 17 March 2009 Introduction 2/21 Physics case for LHCb

More information

PoS(EPS-HEP2017)662. Charm physics prospects at Belle II

PoS(EPS-HEP2017)662. Charm physics prospects at Belle II Dipartimento di Matematica e Fisica, Università di Roma Tre and INFN Sezione di Roma Tre, Via della vasca navale 84, I-00146 Rome, Italy E-mail: giacomo.depietro@roma3.infn.it Belle II is a major upgrade

More information

Measurement of CP Violation in B s J/ΨΦ Decay at CDF

Measurement of CP Violation in B s J/ΨΦ Decay at CDF Measurement of CP Violation in B s J/ΨΦ Decay at CDF Gavril Giurgiu Johns Hopkins University University of Virginia Seminar April 4, 2012 Introduction - CP violation means that the laws of nature are not

More information

Recent results from the LHCb

Recent results from the LHCb PLANCK 2017 AGH UNIVERSITY OF SCIENCE AND TECHNOLOGY Bartłomiej Rachwał (AGH Kraków) on behalf of LHCb collaboration Recent results from the LHCb 20 th Planck Conference physics beyond the Standard Model

More information

CP Violation in B Decays at Belle

CP Violation in B Decays at Belle Journal of Physics: Conference Series CP Violation in B Decays at Belle To cite this article: Masaya Iwabuchi J. Phys.: Conf. Ser. 335 37 View the article online for updates and enhancements. Related content

More information

Measurements of CPV and mixing in charm decays

Measurements of CPV and mixing in charm decays Measurements of CPV and mixing in charm decays on behalf of LHCb Collaboration Moriond QCD La Thuile, Italy March 21 28, 2015 Charm and New Physics In indirect searches for new physics, charm furnish a

More information

arxiv:hep-ph/ v4 18 Nov 1999

arxiv:hep-ph/ v4 18 Nov 1999 February 8, 018 arxiv:hep-ph/990998v4 18 Nov 1999 OITS-678 CLEO measurement of B π + π and determination of weak phase α 1 K. Agashe and N.G. Deshpande 3 Institute of Theoretical Science University of

More information

Heavy Flavor Physics with the ATLAS detector

Heavy Flavor Physics with the ATLAS detector Heavy Flavor Physics with the ATLAS detector Charilaos Tsarouchas - CERN ATLAS collaboration a t l a s Summer School and Workshop on the Standard Model and Beyond September 8-17, 2012 The ATLAS detector

More information

Theory and Phenomenology of CP Violation

Theory and Phenomenology of CP Violation Theory and Phenomenology of CP Violation Thomas Mannel a a Theretische Physik I, University of Siegen, 57068 Siegen, Germany In this talk I summarize a few peculiar features of CP violation in the Standard

More information

First 5 observation of CP violation in the decays of B0. B s at LHCb. Maria Zangoli Per la collaborazione LHCb

First 5 observation of CP violation in the decays of B0. B s at LHCb. Maria Zangoli Per la collaborazione LHCb First 5 observation of CP violation in the decays of 0 B s at LHCb Maria Zangoli Per la collaborazione LHCb XCIX Congresso Nazionale SIF Trieste 25 settembre 2013 Maria Zangoli First 5 observation of CP

More information

arxiv:hep-ph/ v1 22 Mar 1999

arxiv:hep-ph/ v1 22 Mar 1999 CLNS 99/605 Bounding the penguin effects in determinations of α from B 0 (t) π + π arxiv:hep-ph/9903447v 22 Mar 999 Dan Pirjol Floyd R. Newman Laboratory of Nuclear Studies, Cornell University, Ithaca,

More information

Determination of the CP-violating phase φ s in

Determination of the CP-violating phase φ s in Determination of the CP-violating phase φ s in B 0 s J/ψφ decays Varvara Batozskaya on behalf of the LHCb Collaboration National Centre for Nuclear Research (NCBJ), Warsaw, Poland The determination of

More information

Electroweak Theory: 5

Electroweak Theory: 5 Electroweak Theory: 5 Introduction QED The Fermi theory The standard model Precision tests CP violation; K and B systems Higgs physics Prospectus STIAS (January, 2011) Paul Langacker (IAS) 162 References

More information

PoS(CHARM2016)074. Searches for CPV in D + decays at LHCb

PoS(CHARM2016)074. Searches for CPV in D + decays at LHCb Università di Pisa and Sezione INFN di Pisa, Pisa, Italy E-mail: simone.stracka@cern.ch Singly-Cabibbo-suppressed D + decays are a good place to search for CP violation in charm, (s which in the Standard

More information

PoS(CKM2016)113. Measurement of γ from B meson decay to D ( ) K ( )

PoS(CKM2016)113. Measurement of γ from B meson decay to D ( ) K ( ) LAL, Université Paris-Sud, CNRS/IN2P3, Orsay, France. E-mail: frederic.machefert@in2p3.fr The LHCb experiment has measured the angle γ of the unitarity triangle using B D ( ) K ( ) decays and with an integrated

More information

B Physics: Theoretical Aspects Anirban Kundu

B Physics: Theoretical Aspects Anirban Kundu B Physics: Theoretical Aspects Anirban Kundu Calcutta University, Kolkata, India Why B Physics? CP violation. That s why we are here Test the CP violation mechanism of the SM Investigation of the third

More information

arxiv: v1 [hep-ph] 14 Nov 2014

arxiv: v1 [hep-ph] 14 Nov 2014 August 27, 2018 The like-sign dimuon asymmetry and New Physics arxiv:1411.4026v1 [hep-ph] 14 Nov 2014 Miguel Nebot 1 Centro de Física Teórica de Partículas, Instituto Superior Técnico, Universidade de

More information

Direct CPV. K.Trabelsi kek.jp

Direct CPV. K.Trabelsi kek.jp Direct CPV K.Trabelsi karim.trabelsi@ kek.jp '' Theoretical issues in heavvy flavor physics'' K puzzle LP2011, Amol Dighe Old puzzle Before 2004, the K π puzzle was said to be in the ratios of averaged

More information

Standard Model of Particle Physics

Standard Model of Particle Physics Standard Model of Particle Physics Chris Sachrajda School of Physics and Astronomy University of Southampton Southampton SO17 1BJ UK SUSSP61, St Andrews August 8th 23rd 2006 Contents 1. Spontaneous Symmetry

More information

Beyond the Standard Model searches with top quarks at D0

Beyond the Standard Model searches with top quarks at D0 Beyond the Standard Model searches with top quarks at D0 University of Manchester Oxford Road Manchester, M13 9PL, UK E-mail: peters@fnal.gov Due to its high mass and short lifetime, the top quark plays

More information

The LHC Heavy Flavour Programme

The LHC Heavy Flavour Programme The LHC Heavy Flavour Programme Tatsuya Nakada CERN and EPFL LHC Flavour Workshop 26-28.03.07, CERN 1 Contents 1) Introduction 2) LHC Experiments 3) Physics with 2008 data 4) Flavour Physics >2008 5) Conclusions

More information

LHCb Semileptonic Asymmetry

LHCb Semileptonic Asymmetry CERN E-mail: mika.vesterinen@cern.ch A recent measurement of the CP violating flavour specific asymmetry in B s decays, a s sl, is presented. This measurement is based on a data sample corresponding to

More information

Review of Higgs results at LHC (ATLAS and CMS results)

Review of Higgs results at LHC (ATLAS and CMS results) Review of Higgs results at LHC (ATLAS and CMS results) Università degli Studi di Genova and INFN, Genova, Italy E-mail: andrea.favareto@ge.infn.it The status of Higgs sector studies at the Large Hadron

More information

Inclusive radiative electroweak penguin decays:

Inclusive radiative electroweak penguin decays: Inclusive radiative electroweak penguin decays: b sγ University of Melbourne E-mail: luis.pesantez@coepp.org.au The inclusive radiative decay b sγ is a flavor-changing-neutral-current that proceeds through

More information

B-meson anomalies & Higgs physics in flavored U(1) model

B-meson anomalies & Higgs physics in flavored U(1) model B-meson anomalies & Higgs physics in flavored U(1) model Hyun Min Lee Chung-Ang University, Korea L. Bian, S.-M. Choi, Y.-J. Kang, HML, Phys. Rev. D96 (2017) 075038; L. Bian, HML, C.B. Park, arxiv:1711.08930

More information

arxiv: v1 [hep-ex] 15 May 2017

arxiv: v1 [hep-ex] 15 May 2017 B D ( ) τ ν τ and Related Tauonic Topics at Belle arxiv:75.5v [hep-ex] 5 May 7 S. Hirose, For the Belle Collaboration KMI, Nagoya University, Furo, Chikusa, Nagoya, Japan The decays B D ( ) τ ν τ are good

More information

Logitudinal Lepton Polarization Asymmetry in pure Leptonic B Decays

Logitudinal Lepton Polarization Asymmetry in pure Leptonic B Decays Logitudinal Lepton Polarization Asymmetry in pure Leptonic B Decays L. T. Handoko 1,2, C. S. Kim 3 and T. Yoshikawa 4 1 Pusat Penelitian Fisika, LIPI Kompleks PUSPIPTEK Serpong, Tangerang 1531, Indonesia

More information

Rare decays of beauty mesons

Rare decays of beauty mesons Rare decays of beauty mesons on behalf of the LHCb collaboration - The LHCb experiment ECAL, HCAL Particle Id RICH system Muon chambers Interaction point Velo Tracking Tracking stations 2 / 25 B 0 (s)

More information

arxiv: v1 [hep-ex] 14 Oct 2011

arxiv: v1 [hep-ex] 14 Oct 2011 Proceedings of the DPF-211 Conference, Providence, RI, August 8-13, 211 1 Studies of b-hadron decays to charming final states at S. Ricciardi (on behalf of the Collaboration) STFC Rutherford Appleton Laboratory,

More information

-2betas Measurement from a fit to untagged Bs-> J/psi phi data

-2betas Measurement from a fit to untagged Bs-> J/psi phi data -2betas Measurement from a fit to untagged Bs-> J/psi phi data Géraldine Conti Géraldine Conti 1. Outline Part 1 : Introduction What is -2β s? How to measure -2β s? What s new about -2β s? Why is LHCb

More information

Perspectives in B Physics: Results from LHCb

Perspectives in B Physics: Results from LHCb Pheno 2017 Symposium Pittsburgh, May 8 th, 2017 Perspectives in B Physics: Results from LHCb Ulrich Uwer Heidelberg University on behalf of the LHCb Collaboration Outline: b s Introduction Unitarity Triangle

More information

B. Hoeneisen. Universidad San Francisco de Quito Representing the DØ Collaboration Flavor Physics and CP violation (2013)

B. Hoeneisen. Universidad San Francisco de Quito Representing the DØ Collaboration Flavor Physics and CP violation (2013) Status report on the like-sign dimuon charge asymmetry in p p collisions and Measurement of the direct CP asymmetry in B J/ψK and B J/ψπ decays B. Hoeneisen Universidad San Francisco de Quito Representing

More information